Publication | Closed Access
Fine-Grained Big Data Security Method Based on Zero Trust Model
37
Citations
4
References
2018
Year
Unknown Venue
EngineeringData TrustInformation SecurityTrust Management ArchitectureData-centric SecurityZero-trust SecurityInformation ForensicsBig Data InfrastructureBig Data ModelHardware SecurityData ScienceFull Network TrafficBig Data ArchitectureData ManagementData Security RisksData PrivacyData Access AuditComputer ScienceBig Data ExchangeData SecurityCryptographyTrustworthy ComputingTrusted SystemZero Trust ModelBlockchainBig Data
With the rapid development of big data technology, the requirement of data processing capacity and efficiency result in failure of a number of legacy security technologies, especially in the data security domain. Data security risks became extremely important for big data usage. We introduced a novel method to preform big data security control, which comprises three steps, namely, user context recognition based on zero trust, fine-grained data access authentication control, and data access audit based on full network traffic to recognize and intercept risky data access in big data environment. Experiments conducted on the fine-grained big data security method based on the zero trust model of drug-related information analysis system demonstrated that this method can identify the majority of data security risks.
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